ddp_path.c 40 KB

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  1. /* Copyright Statement:
  2. *
  3. * This software/firmware and related documentation ("MediaTek Software") are
  4. * protected under relevant copyright laws. The information contained herein
  5. * is confidential and proprietary to MediaTek Inc. and/or its licensors.
  6. * Without the prior written permission of MediaTek inc. and/or its licensors,
  7. * any reproduction, modification, use or disclosure of MediaTek Software,
  8. * and information contained herein, in whole or in part, shall be strictly prohibited.
  9. */
  10. /* MediaTek Inc. (C) 2015. All rights reserved.
  11. *
  12. * BY OPENING THIS FILE, RECEIVER HEREBY UNEQUIVOCALLY ACKNOWLEDGES AND AGREES
  13. * THAT THE SOFTWARE/FIRMWARE AND ITS DOCUMENTATIONS ("MEDIATEK SOFTWARE")
  14. * RECEIVED FROM MEDIATEK AND/OR ITS REPRESENTATIVES ARE PROVIDED TO RECEIVER ON
  15. * AN "AS-IS" BASIS ONLY. MEDIATEK EXPRESSLY DISCLAIMS ANY AND ALL WARRANTIES,
  16. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE IMPLIED WARRANTIES OF
  17. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NONINFRINGEMENT.
  18. * NEITHER DOES MEDIATEK PROVIDE ANY WARRANTY WHATSOEVER WITH RESPECT TO THE
  19. * SOFTWARE OF ANY THIRD PARTY WHICH MAY BE USED BY, INCORPORATED IN, OR
  20. * SUPPLIED WITH THE MEDIATEK SOFTWARE, AND RECEIVER AGREES TO LOOK ONLY TO SUCH
  21. * THIRD PARTY FOR ANY WARRANTY CLAIM RELATING THERETO. RECEIVER EXPRESSLY ACKNOWLEDGES
  22. * THAT IT IS RECEIVER'S SOLE RESPONSIBILITY TO OBTAIN FROM ANY THIRD PARTY ALL PROPER LICENSES
  23. * CONTAINED IN MEDIATEK SOFTWARE. MEDIATEK SHALL ALSO NOT BE RESPONSIBLE FOR ANY MEDIATEK
  24. * SOFTWARE RELEASES MADE TO RECEIVER'S SPECIFICATION OR TO CONFORM TO A PARTICULAR
  25. * STANDARD OR OPEN FORUM. RECEIVER'S SOLE AND EXCLUSIVE REMEDY AND MEDIATEK'S ENTIRE AND
  26. * CUMULATIVE LIABILITY WITH RESPECT TO THE MEDIATEK SOFTWARE RELEASED HEREUNDER WILL BE,
  27. * AT MEDIATEK'S OPTION, TO REVISE OR REPLACE THE MEDIATEK SOFTWARE AT ISSUE,
  28. * OR REFUND ANY SOFTWARE LICENSE FEES OR SERVICE CHARGE PAID BY RECEIVER TO
  29. * MEDIATEK FOR SUCH MEDIATEK SOFTWARE AT ISSUE.
  30. */
  31. #define LOG_TAG "ddp_path"
  32. #include "platform/mt_irq.h"
  33. #include "platform/mt_irq.h"
  34. #include "platform/disp_drv_platform.h"
  35. #include "platform/ddp_reg.h"
  36. #include "platform/ddp_path.h"
  37. #include "platform/ddp_info.h"
  38. #include "platform/ddp_log.h"
  39. #define BIT_NUM (8)
  40. typedef struct module_map_s {
  41. DISP_MODULE_ENUM module;
  42. int bit;
  43. int mod_num;
  44. } module_map_t;
  45. typedef struct {
  46. int m;
  47. int v;
  48. } m_to_b;
  49. typedef struct mout_s {
  50. int id;
  51. m_to_b out_id_bit_map[BIT_NUM];
  52. volatile unsigned long *reg;
  53. unsigned int reg_val;
  54. } mout_t;
  55. typedef struct selection_s {
  56. int id;
  57. int id_bit_map[BIT_NUM];
  58. volatile unsigned long *reg;
  59. unsigned int reg_val;
  60. } sel_t;
  61. #define DDP_ENING_NUM (20)
  62. #define DDP_MOUT_NUM 10
  63. #define DDP_SEL_OUT_NUM 10
  64. #define DDP_SEL_IN_NUM 20
  65. #define DDP_MUTEX_MAX 5
  66. int module_list_scenario[DDP_SCENARIO_MAX][DDP_ENING_NUM] = {
  67. /*PRIMARY_DISP */
  68. {
  69. DISP_MODULE_OVL0_2L, DISP_MODULE_RSZ0, DISP_MODULE_OVL0,
  70. DISP_MODULE_RDMA0, DISP_MODULE_RDMA_VIRTUAL0,
  71. DISP_MODULE_COLOR0, DISP_MODULE_CCORR0, DISP_MODULE_AAL0,
  72. DISP_MODULE_GAMMA0, DISP_MODULE_POSTMASK, DISP_MODULE_DITHER0,
  73. DISP_MODULE_PWM0, DISP_MODULE_DSI0,
  74. -1,
  75. },
  76. /*PRIMARY_RDMA0_COLOR0_DISP */
  77. {
  78. DISP_MODULE_RDMA0, DISP_MODULE_COLOR0, DISP_MODULE_CCORR0, DISP_MODULE_AAL0,
  79. DISP_MODULE_GAMMA0, DISP_MODULE_POSTMASK, DISP_MODULE_DITHER0,
  80. DISP_MODULE_PWM0, DISP_MODULE_DSI0,
  81. -1,
  82. },
  83. /*PRIMARY_RDMA0_DISP */
  84. {
  85. DISP_MODULE_RDMA0, DISP_MODULE_PWM0, DISP_MODULE_DSI0,
  86. -1,
  87. },
  88. /* DDP_SCENARIO_PRIMARY_OVL_MEMOUT */
  89. {
  90. DISP_MODULE_OVL0, DISP_MODULE_OVL0_2L, DISP_MODULE_WDMA_VIRTUAL0,
  91. DISP_MODULE_WDMA_VIRTUAL1, DISP_MODULE_WDMA0,
  92. -1,
  93. },
  94. /* DDP_SCENARIO_PRIMARY_ALL */
  95. {
  96. DISP_MODULE_OVL0, DISP_MODULE_OVL0_2L, DISP_MODULE_WDMA_VIRTUAL0,
  97. DISP_MODULE_WDMA_VIRTUAL1, DISP_MODULE_WDMA0, DISP_MODULE_RDMA0,
  98. DISP_MODULE_COLOR0, DISP_MODULE_CCORR0, DISP_MODULE_AAL0, DISP_MODULE_GAMMA0,
  99. DISP_MODULE_POSTMASK, DISP_MODULE_DITHER0, DISP_MODULE_DSI0,
  100. -1,
  101. },
  102. /* DDP_SCENARIO_SUB_DISP */
  103. {
  104. DISP_MODULE_OVL1_2L, DISP_MODULE_RDMA1, DISP_MODULE_DPI,
  105. -1,
  106. },
  107. /* DDP_SCENARIO_SUB_RDMA1_DISP */
  108. {
  109. DISP_MODULE_RDMA1, DISP_MODULE_DPI,
  110. -1,
  111. },
  112. };
  113. /* 1st para is mout's input, 2nd para is mout's output */
  114. static mout_t mout_map[DDP_MOUT_NUM] = {
  115. /* OVL_MOUT */
  116. [0] = {
  117. DISP_MODULE_OVL0,
  118. {
  119. {DISP_MODULE_RDMA0, 1 << 0},
  120. {DISP_MODULE_WDMA_VIRTUAL0, 1 << 2},
  121. {DISP_MODULE_RSZ0, 1 << 4},
  122. {-1, 0}
  123. },
  124. 0, 0
  125. },
  126. [1] = {
  127. DISP_MODULE_OVL0_2L,
  128. {
  129. {DISP_MODULE_RDMA0, 1 << 0},
  130. {DISP_MODULE_WDMA_VIRTUAL0, 1 << 2},
  131. {DISP_MODULE_RSZ0, 1 << 4},
  132. {-1, 0}
  133. },
  134. 0, 0
  135. },
  136. [2] = {
  137. DISP_MODULE_OVL1_2L,
  138. {
  139. {DISP_MODULE_RDMA0, 1 << 0},
  140. {DISP_MODULE_WDMA_VIRTUAL0, 1 << 2},
  141. {DISP_MODULE_RDMA1, 1 << 4},
  142. {DISP_MODULE_RSZ0, 1 << 5},
  143. {-1, 0}
  144. },
  145. 0, 0
  146. },
  147. /* DITHER0_MOUT */
  148. [3] = {
  149. DISP_MODULE_DITHER0,
  150. {
  151. {DISP_MODULE_DSI0, 1 << 0},
  152. {DISP_MODULE_DPI, 1 << 1},
  153. {DISP_MODULE_WDMA_VIRTUAL1, 1 << 2},
  154. {-1, 0}
  155. },
  156. 0, 0
  157. },
  158. /* RSZ0_MOUT */
  159. [4] = {
  160. DISP_MODULE_RSZ0,
  161. {
  162. {DISP_MODULE_OVL0, 1 << 0},
  163. {DISP_MODULE_OVL0_2L, 1 << 1},
  164. {DISP_MODULE_OVL1_2L, 1 << 2},
  165. {DISP_MODULE_RDMA0, 1 << 3},
  166. {DISP_MODULE_WDMA_VIRTUAL0, 1 << 4},
  167. {DISP_MODULE_RDMA_VIRTUAL0, 1 << 5},
  168. {-1, 0}
  169. },
  170. 0, 0
  171. },
  172. /* DISP_OVL0_WCG_MOUT_EN */
  173. [5] = {
  174. DISP_MODULE_OVL0,
  175. {
  176. {DISP_MODULE_OVL0_2L, 1 << 0},
  177. {DISP_MODULE_OVL1_2L, 1 << 1},
  178. },
  179. 0, 0
  180. },
  181. /* DISP_OVL0_2L_WCG_MOUT_EN */
  182. [6] = {
  183. DISP_MODULE_OVL0_2L,
  184. {
  185. {DISP_MODULE_OVL0, 1 << 0},
  186. {DISP_MODULE_OVL1_2L, 1 << 1},
  187. },
  188. 0, 0
  189. },
  190. /* DISP_OVL1_2L_WCG_MOUT_EN */
  191. [7] = {
  192. DISP_MODULE_OVL1_2L,
  193. {
  194. {DISP_MODULE_OVL0, 1 << 0},
  195. {DISP_MODULE_OVL0_2L, 1 << 1},
  196. },
  197. 0, 0
  198. },
  199. };
  200. static sel_t sel_out_map[DDP_SEL_OUT_NUM] = {
  201. /* RDMA0_RSZ_IN_SOUT */
  202. [0] = {
  203. DISP_MODULE_RDMA0,
  204. {
  205. DISP_MODULE_RDMA_VIRTUAL0, DISP_MODULE_RSZ0
  206. },
  207. 0, 0
  208. },
  209. /* RDMA0_SOUT */
  210. [1] = {
  211. DISP_MODULE_RDMA_VIRTUAL0,
  212. {
  213. DISP_MODULE_DSI0, DISP_MODULE_COLOR0,
  214. DISP_MODULE_CCORR0, DISP_MODULE_DPI,
  215. },
  216. 0, 0
  217. },
  218. /* RDMA1_SOUT */
  219. [2] = {
  220. DISP_MODULE_RDMA1,
  221. {
  222. DISP_MODULE_DPI, DISP_MODULE_DSI0
  223. },
  224. 0, 0
  225. },
  226. };
  227. /* 1st para is sout's output, 2nd para is sout's input */
  228. static sel_t sel_in_map[DDP_SEL_IN_NUM] = {
  229. /* CCORR_SEL */
  230. [0] = {
  231. DISP_MODULE_CCORR0,
  232. {
  233. DISP_MODULE_COLOR0, DISP_MODULE_RDMA_VIRTUAL0, -1
  234. },
  235. 0, 0
  236. },
  237. /* RDMA_SEL / PATH0_SEL */
  238. [1] = {
  239. DISP_MODULE_RDMA0,
  240. {
  241. DISP_MODULE_OVL0, DISP_MODULE_OVL0_2L,
  242. DISP_MODULE_OVL1_2L, DISP_MODULE_RSZ0, -1
  243. },
  244. 0, 0
  245. },
  246. /* RSZ_OUT_SEL */
  247. [2] = {
  248. DISP_MODULE_RDMA_VIRTUAL0,
  249. {
  250. DISP_MODULE_RDMA0, DISP_MODULE_RSZ0, -1
  251. },
  252. 0, 0
  253. },
  254. /* RSZ_SEL */
  255. [3] = {
  256. DISP_MODULE_RSZ0,
  257. {
  258. DISP_MODULE_NUM, DISP_MODULE_NUM, DISP_MODULE_NUM,
  259. DISP_MODULE_RDMA0, DISP_MODULE_OVL0,
  260. DISP_MODULE_OVL0_2L, DISP_MODULE_OVL1_2L, -1
  261. },
  262. 0, 0
  263. },
  264. /* WDMA0_PRE_SEL */
  265. [4] = {
  266. DISP_MODULE_WDMA_VIRTUAL1,
  267. {
  268. DISP_MODULE_WDMA_VIRTUAL0, DISP_MODULE_DITHER0, -1
  269. },
  270. 0, 0
  271. },
  272. /* WDMA0_SEL */
  273. [5] = {
  274. DISP_MODULE_WDMA0,
  275. {
  276. DISP_MODULE_NUM, DISP_MODULE_NUM,
  277. DISP_MODULE_NUM, DISP_MODULE_WDMA_VIRTUAL1, -1
  278. },
  279. 0, 0
  280. },
  281. /* DPI_SEL */
  282. [6] = {
  283. DISP_MODULE_DPI,
  284. {
  285. DISP_MODULE_RDMA_VIRTUAL0, DISP_MODULE_RDMA1,
  286. DISP_MODULE_DITHER0, -1
  287. },
  288. 0, 0
  289. },
  290. /* DSI_SEL */
  291. [7] = {
  292. DISP_MODULE_DSI0,
  293. {
  294. DISP_MODULE_DITHER0, DISP_MODULE_RDMA_VIRTUAL0,
  295. DISP_MODULE_RDMA1, -1
  296. },
  297. 0, 0
  298. },
  299. /* OVL_TO_WDMA_SEL */
  300. [8] = {
  301. DISP_MODULE_WDMA_VIRTUAL0,
  302. {
  303. DISP_MODULE_OVL0, DISP_MODULE_OVL0_2L,
  304. DISP_MODULE_OVL1_2L, DISP_MODULE_RSZ0, -1
  305. },
  306. 0, 0
  307. },
  308. [9] = {
  309. DISP_MODULE_OVL0,
  310. {
  311. DISP_MODULE_OVL0_2L, DISP_MODULE_OVL1_2L, -1
  312. },
  313. 0, 0
  314. },
  315. [10] = {
  316. DISP_MODULE_OVL0_2L,
  317. {
  318. DISP_MODULE_OVL0, DISP_MODULE_OVL1_2L, -1
  319. },
  320. 0, 0
  321. },
  322. [11] = {
  323. DISP_MODULE_OVL1_2L,
  324. {
  325. DISP_MODULE_OVL0, DISP_MODULE_OVL0_2L, -1
  326. },
  327. 0, 0
  328. },
  329. };
  330. int ddp_path_init(void)
  331. {
  332. /* mout */
  333. mout_map[0].reg = (unsigned long *)DISP_REG_CONFIG_DISP_OVL0_MOUT_EN;
  334. mout_map[1].reg = (unsigned long *)DISP_REG_CONFIG_DISP_OVL0_2L_MOUT_EN;
  335. mout_map[2].reg = (unsigned long *)DISP_REG_CONFIG_DISP_OVL1_2L_MOUT_EN;
  336. mout_map[3].reg = (unsigned long *)DISP_REG_CONFIG_DISP_DITHER0_MOUT_EN;
  337. mout_map[4].reg = (unsigned long *)DISP_REG_CONFIG_DISP_RSZ_MOUT_EN;
  338. mout_map[5].reg = (unsigned long *)
  339. DISP_REG_CONFIG_DISP_OVL0_WCG_MOUT_EN;
  340. mout_map[6].reg = (unsigned long *)
  341. DISP_REG_CONFIG_DISP_OVL0_2L_WCG_MOUT_EN;
  342. mout_map[7].reg = (unsigned long *)
  343. DISP_REG_CONFIG_DISP_OVL1_2L_WCG_MOUT_EN;
  344. /* sel_out */
  345. sel_out_map[0].reg = (unsigned long *)
  346. DISP_REG_CONFIG_DISP_RDMA0_RSZ_IN_SOUT_SEL_IN;
  347. sel_out_map[1].reg = (unsigned long *)
  348. DISP_REG_CONFIG_DISP_RDMA0_SOUT_SEL_IN;
  349. sel_out_map[2].reg = (unsigned long *)
  350. DISP_REG_CONFIG_DISP_RDMA1_SOUT_SEL_IN;
  351. /* sel_in */
  352. sel_in_map[0].reg = (unsigned long *)
  353. DISP_REG_CONFIG_DISP_COLOR_OUT_SEL_IN;
  354. sel_in_map[1].reg = (unsigned long *)DISP_REG_CONFIG_DISP_PATH0_SEL_IN;
  355. sel_in_map[2].reg = (unsigned long *)
  356. DISP_REG_CONFIG_DISP_RDMA0_RSZ_OUT_SEL_IN;
  357. sel_in_map[3].reg = (unsigned long *)DISP_REG_CONFIG_DISP_RSZ_SEL_IN;
  358. sel_in_map[4].reg = (unsigned long *)
  359. DISP_REG_CONFIG_DISP_WDMA0_PRE_SEL_IN;
  360. sel_in_map[5].reg = (unsigned long *)DISP_REG_CONFIG_DISP_WDMA0_SEL_IN;
  361. sel_in_map[6].reg = (unsigned long *)DISP_REG_CONFIG_DPI0_SEL_IN;
  362. sel_in_map[7].reg = (unsigned long *)DISP_REG_CONFIG_DSI0_SEL_IN;
  363. sel_in_map[8].reg = (unsigned long *)DISP_REG_CONFIG_OVL_TO_WDMA_SEL_IN;
  364. sel_in_map[9].reg = (unsigned long *)
  365. DISP_REG_CONFIG_DISP_OVL0_WCG_SEL_IN;
  366. sel_in_map[10].reg = (unsigned long *)
  367. DISP_REG_CONFIG_DISP_OVL0_2L_WCG_SEL_IN;
  368. sel_in_map[11].reg = (unsigned long *)
  369. DISP_REG_CONFIG_DISP_OVL1_2L_WCG_SEL_IN;
  370. return 0;
  371. }
  372. static module_map_t module_mutex_map[DISP_MODULE_NUM] = {
  373. {DISP_MODULE_OVL0, 9, 0},
  374. {DISP_MODULE_OVL1, -1, 0},
  375. {DISP_MODULE_OVL0_2L, 10, 0},
  376. {DISP_MODULE_OVL1_2L, 11, 0},
  377. {DISP_MODULE_OVL0_VIRTUAL, -1, 0},
  378. {DISP_MODULE_OVL0_2L_VIRTUAL, -1, 0},
  379. {DISP_MODULE_OVL1_2L_VIRTUAL, -1, 0},
  380. {DISP_MODULE_RDMA0, 0, 0},
  381. {DISP_MODULE_RDMA1, 1, 0},
  382. {DISP_MODULE_RDMA2, -1, 0},
  383. {DISP_MODULE_RDMA_VIRTUAL0, -1, 0},
  384. {DISP_MODULE_WDMA0, 12, 0},
  385. {DISP_MODULE_WDMA1, -1, 0},
  386. {DISP_MODULE_WDMA_VIRTUAL0, -1, 0},
  387. {DISP_MODULE_WDMA_VIRTUAL1, -1, 0},
  388. {DISP_MODULE_COLOR0, 13, 0},
  389. {DISP_MODULE_COLOR1, -1, 0},
  390. {DISP_MODULE_CCORR0, 14, 0},
  391. {DISP_MODULE_CCORR1, -1, 0},
  392. {DISP_MODULE_AAL0, 15, 0},
  393. {DISP_MODULE_AAL1, -1, 0},
  394. {DISP_MODULE_GAMMA0, 16, 0},
  395. {DISP_MODULE_GAMMA1, -1, 0},
  396. {DISP_MODULE_OD, -1, 0},
  397. {DISP_MODULE_DITHER0, 17, 0},
  398. {DISP_MODULE_DITHER1, -1, 0},
  399. {DISP_MODULE_PATH0, -1, 0},
  400. {DISP_MODULE_PATH1, -1, 0},
  401. {DISP_MODULE_UFOE, -1, 0},
  402. {DISP_MODULE_DSC, -1, 0},
  403. {DISP_MODULE_DSC_2ND, -1, 0},
  404. {DISP_MODULE_SPLIT0, -1, 0},
  405. {DISP_MODULE_DSI0, 19, 0},
  406. {DISP_MODULE_DSI1, -1, 0},
  407. {DISP_MODULE_DSIDUAL, -1, 0},
  408. {DISP_MODULE_PWM0, 18, 0},
  409. {DISP_MODULE_PWM1, -1, 0},
  410. {DISP_MODULE_CONFIG, -1, 0},
  411. {DISP_MODULE_MUTEX, -1, 0},
  412. {DISP_MODULE_SMI_COMMON, -1, 0},
  413. {DISP_MODULE_SMI_LARB0, -1, 0},
  414. {DISP_MODULE_SMI_LARB1, -1, 0},
  415. {DISP_MODULE_MIPI0, -1, 0},
  416. {DISP_MODULE_MIPI1, -1, 0},
  417. {DISP_MODULE_RSZ0, 22, 0},
  418. {DISP_MODULE_RSZ1, -1, 0},
  419. {DISP_MODULE_DPI, 20, 0},
  420. {DISP_MODULE_DBI, -1, 0},
  421. {DISP_MODULE_DPI_VIRTUAL, -1, 0},
  422. {DISP_MODULE_POSTMASK, 21, 0},
  423. {DISP_MODULE_UNKNOWN, -1, 0},
  424. };
  425. /* module can be connect if 1 */
  426. static module_map_t module_can_connect[DISP_MODULE_NUM] = {
  427. {DISP_MODULE_OVL0, 1, 0},
  428. {DISP_MODULE_OVL1, 0, 0},
  429. {DISP_MODULE_OVL0_2L, 1, 0},
  430. {DISP_MODULE_OVL1_2L, 1, 0},
  431. {DISP_MODULE_OVL0_VIRTUAL, 0, 0},
  432. {DISP_MODULE_OVL0_2L_VIRTUAL, 0, 0},
  433. {DISP_MODULE_OVL1_2L_VIRTUAL, 0, 0},
  434. {DISP_MODULE_RDMA0, 1, 0},
  435. {DISP_MODULE_RDMA1, 1, 0},
  436. {DISP_MODULE_RDMA2, 0, 0},
  437. {DISP_MODULE_RDMA_VIRTUAL0, 1, 0},
  438. {DISP_MODULE_WDMA0, 1, 0},
  439. {DISP_MODULE_WDMA1, 0, 0},
  440. {DISP_MODULE_WDMA_VIRTUAL0, 0, 0},
  441. {DISP_MODULE_WDMA_VIRTUAL1, 0, 0},
  442. {DISP_MODULE_COLOR0, 1, 0},
  443. {DISP_MODULE_COLOR1, 0, 0},
  444. {DISP_MODULE_CCORR0, 1, 0},
  445. {DISP_MODULE_CCORR1, 0, 0},
  446. {DISP_MODULE_AAL0, 1, 0},
  447. {DISP_MODULE_AAL1, 0, 0},
  448. {DISP_MODULE_GAMMA0, 1, 0},
  449. {DISP_MODULE_GAMMA1, 0, 0},
  450. {DISP_MODULE_OD, 0, 0},
  451. {DISP_MODULE_DITHER0, 1, 0},
  452. {DISP_MODULE_DITHER1, 0, 0},
  453. {DISP_MODULE_PATH0, 0, 0},
  454. {DISP_MODULE_PATH1, 0, 0},
  455. {DISP_MODULE_UFOE, 0, 0},
  456. {DISP_MODULE_DSC, 0, 0},
  457. {DISP_MODULE_DSC_2ND, 0, 0},
  458. {DISP_MODULE_SPLIT0, 0, 0},
  459. {DISP_MODULE_DSI0, 1, 0},
  460. {DISP_MODULE_DSI1, 0, 0},
  461. {DISP_MODULE_DSIDUAL, 0, 0},
  462. {DISP_MODULE_PWM0, 0, 0},
  463. {DISP_MODULE_PWM1, 0, 0},
  464. {DISP_MODULE_CONFIG, 0, 0},
  465. {DISP_MODULE_MUTEX, 0, 0},
  466. {DISP_MODULE_SMI_COMMON, 0, 0},
  467. {DISP_MODULE_SMI_LARB0, 0, 0},
  468. {DISP_MODULE_SMI_LARB1, 0, 0},
  469. {DISP_MODULE_MIPI0, 0, 0},
  470. {DISP_MODULE_MIPI1, 0, 0},
  471. {DISP_MODULE_RSZ0, 1, 0},
  472. {DISP_MODULE_RSZ1, 0, 0},
  473. {DISP_MODULE_DPI, 1, 0},
  474. {DISP_MODULE_DBI, 0, 0},
  475. {DISP_MODULE_DPI_VIRTUAL, 0, 0},
  476. {DISP_MODULE_POSTMASK, 1, 0},
  477. {DISP_MODULE_UNKNOWN, 0, 0},
  478. };
  479. char *ddp_get_scenario_name(DDP_SCENARIO_ENUM scenario)
  480. {
  481. switch (scenario) {
  482. case DDP_SCENARIO_PRIMARY_DISP:
  483. return "primary_disp";
  484. case DDP_SCENARIO_PRIMARY_RDMA0_COLOR0_DISP:
  485. return "primary_rdma0_color0_disp";
  486. case DDP_SCENARIO_PRIMARY_RDMA0_DISP:
  487. return "primary_rdma0_disp";
  488. case DDP_SCENARIO_PRIMARY_OVL_MEMOUT:
  489. return "primary_ovl_memout";
  490. case DDP_SCENARIO_SUB_DISP:
  491. return "sub_disp";
  492. case DDP_SCENARIO_SUB_RDMA1_DISP:
  493. return "sub_rdma1_disp";
  494. case DDP_SCENARIO_SUB_OVL_MEMOUT:
  495. return "sub_ovl_memout";
  496. case DDP_SCENARIO_PRIMARY_ALL:
  497. return "primary_all";
  498. case DDP_SCENARIO_SUB_ALL:
  499. return "sub_all";
  500. default:
  501. DDPMSG("invalid scenario id=%d\n", scenario);
  502. return "unknown";
  503. }
  504. }
  505. int ddp_is_scenario_on_primary(DDP_SCENARIO_ENUM scenario)
  506. {
  507. int on_primary = 0;
  508. switch (scenario) {
  509. case DDP_SCENARIO_PRIMARY_DISP:
  510. case DDP_SCENARIO_PRIMARY_RDMA0_COLOR0_DISP:
  511. case DDP_SCENARIO_PRIMARY_RDMA0_DISP:
  512. case DDP_SCENARIO_PRIMARY_OVL_MEMOUT:
  513. case DDP_SCENARIO_PRIMARY_ALL:
  514. on_primary = 1;
  515. break;
  516. case DDP_SCENARIO_SUB_DISP:
  517. case DDP_SCENARIO_SUB_RDMA1_DISP:
  518. case DDP_SCENARIO_SUB_OVL_MEMOUT:
  519. case DDP_SCENARIO_SUB_ALL:
  520. on_primary = 0;
  521. break;
  522. default:
  523. DDPMSG("invalid scenario id=%d\n", scenario);
  524. }
  525. return on_primary;
  526. }
  527. char *ddp_get_mutex_sof_name(unsigned int regval)
  528. {
  529. if (regval == SOF_VAL_MUTEX0_SOF_SINGLE_MODE)
  530. return "single";
  531. else if (regval == SOF_VAL_MUTEX0_SOF_FROM_DSI0)
  532. return "dsi0";
  533. else if (regval == SOF_VAL_MUTEX0_SOF_FROM_DPI)
  534. return "dpi";
  535. DDPDUMP("%s, unknown reg=%d\n", __func__, regval);
  536. return "unknown";
  537. }
  538. char *ddp_get_mode_name(DDP_MODE ddp_mode)
  539. {
  540. switch (ddp_mode) {
  541. case DDP_VIDEO_MODE:
  542. return "vido_mode";
  543. case DDP_CMD_MODE:
  544. return "cmd_mode";
  545. default:
  546. DDPMSG("invalid ddp mode =%d\n", ddp_mode);
  547. return "unknown";
  548. }
  549. }
  550. static int ddp_get_module_num_l(int *module_list)
  551. {
  552. unsigned int num = 0;
  553. while (*(module_list + num) != -1) {
  554. num++;
  555. if (num == DDP_ENING_NUM)
  556. break;
  557. }
  558. return num;
  559. }
  560. /* config mout/msel to creat a compelte path */
  561. static void ddp_connect_path_l(int *module_list, void *handle)
  562. {
  563. int i;
  564. unsigned int j, k;
  565. int step = 0;
  566. unsigned int mout = 0;
  567. unsigned int reg_mout = 0;
  568. unsigned int mout_idx = 0;
  569. int module_num = ddp_get_module_num_l(module_list);
  570. DDPDBG("connect_path: %s to %s\n", ddp_get_module_name(module_list[0]),
  571. ddp_get_module_name(module_list[module_num - 1]));
  572. /* connect mout */
  573. for (i = 0; i < module_num - 1; i++) {
  574. for (j = 0; j < DDP_MOUT_NUM; j++) {
  575. if (module_list[i] == mout_map[j].id) {
  576. /* find next module which can be connected */
  577. step = i + 1;
  578. while (module_can_connect[module_list[step]].bit == 0 && step < module_num)
  579. step++;
  580. ASSERT(step < module_num);
  581. mout = mout_map[j].reg_val;
  582. for (k = 0; k < 5; k++) {
  583. if (mout_map[j].out_id_bit_map[k].m == -1)
  584. break;
  585. if (mout_map[j].out_id_bit_map[k].m == module_list[step]) {
  586. mout |= mout_map[j].out_id_bit_map[k].v;
  587. reg_mout |= mout;
  588. mout_idx = j;
  589. DDPDBG("connect mout %s to %s bits 0x%x\n",
  590. ddp_get_module_name(module_list[i]),
  591. ddp_get_module_name(module_list[step]),
  592. reg_mout);
  593. break;
  594. }
  595. }
  596. mout_map[j].reg_val = mout;
  597. mout = 0;
  598. }
  599. }
  600. if (reg_mout) {
  601. DISP_REG_SET(handle, mout_map[mout_idx].reg, reg_mout);
  602. reg_mout = 0;
  603. mout_idx = 0;
  604. }
  605. }
  606. /* connect out select */
  607. for (i = 0; i < module_num - 1; i++) {
  608. for (j = 0; j < DDP_SEL_OUT_NUM; j++) {
  609. if (module_list[i] == sel_out_map[j].id) {
  610. step = i + 1;
  611. /* find next module which can be connected */
  612. while (module_can_connect[module_list[step]].bit == 0 && step < module_num)
  613. step++;
  614. ASSERT(step < module_num);
  615. for (k = 0; k < 4; k++) {
  616. if (sel_out_map[j].id_bit_map[k] == -1)
  617. break;
  618. if (sel_out_map[j].id_bit_map[k] == module_list[step]) {
  619. DDPDBG("connect out_s %s to %s, value=%d\n",
  620. ddp_get_module_name(module_list[i]),
  621. ddp_get_module_name(module_list[step]), k);
  622. DISP_REG_SET(handle, sel_out_map[j].reg,
  623. (uint16_t) k);
  624. break;
  625. }
  626. }
  627. }
  628. }
  629. }
  630. /* connect input select */
  631. for (i = 1; i < module_num; i++) {
  632. for (j = 0; j < DDP_SEL_IN_NUM; j++) {
  633. if (module_list[i] == sel_in_map[j].id) {
  634. int found = 0;
  635. step = i - 1;
  636. /* find next module which can be connected */
  637. while (module_can_connect[module_list[step]].bit == 0 && step > 0)
  638. step--;
  639. ASSERT(step >= 0);
  640. for (k = 0; k < 8; k++) {
  641. if (sel_in_map[j].id_bit_map[k] == -1)
  642. break;
  643. if (sel_in_map[j].id_bit_map[k] == module_list[step]) {
  644. DDPDBG("connect in_s %s to %s, value=%d\n",
  645. ddp_get_module_name(module_list[step]),
  646. ddp_get_module_name(module_list[i]), k);
  647. DISP_REG_SET(handle, sel_in_map[j].reg,
  648. (uint16_t) k);
  649. found = 1;
  650. break;
  651. }
  652. }
  653. if (!found)
  654. DDPERR("%s error: %s sel_in not set\n", __func__,
  655. ddp_get_module_name(module_list[i]));
  656. }
  657. }
  658. }
  659. }
  660. static void ddp_check_path_l(int *module_list)
  661. {
  662. int i;
  663. unsigned int j, k;
  664. int step = 0;
  665. int valid = 0;
  666. unsigned int mout;
  667. unsigned int path_error = 0;
  668. int module_num = ddp_get_module_num_l(module_list);
  669. DDPDUMP("check_path: %s to %s\n", ddp_get_module_name(module_list[0])
  670. , ddp_get_module_name(module_list[module_num - 1]));
  671. /* check mout */
  672. for (i = 0; i < module_num - 1; i++) {
  673. for (j = 0; j < DDP_MOUT_NUM; j++) {
  674. if (module_list[i] == mout_map[j].id) {
  675. mout = 0;
  676. /* find next module which can be connected */
  677. step = i + 1;
  678. while (module_can_connect[module_list[step]].bit == 0
  679. && step < module_num) {
  680. step++;
  681. }
  682. ASSERT(step < module_num);
  683. for (k = 0; k < 5; k++) {
  684. if (mout_map[j].out_id_bit_map[k].m == -1)
  685. break;
  686. if (mout_map[j].out_id_bit_map[k].m == module_list[step]) {
  687. mout |= mout_map[j].out_id_bit_map[k].v;
  688. valid = 1;
  689. break;
  690. }
  691. }
  692. if (valid) {
  693. valid = 0;
  694. if ((DISP_REG_GET(mout_map[j].reg) & mout) == 0) {
  695. path_error += 1;
  696. DDPDUMP("error:%s mout, expect=0x%x, real=0x%x\n",
  697. ddp_get_module_name(module_list[i]),
  698. mout, DISP_REG_GET(mout_map[j].reg));
  699. } else if (DISP_REG_GET(mout_map[j].reg) != mout) {
  700. DDPDUMP
  701. ("warning: %s mout expect=0x%x, real=0x%x\n",
  702. ddp_get_module_name(module_list[i]), mout,
  703. DISP_REG_GET(mout_map[j].reg));
  704. }
  705. }
  706. break;
  707. }
  708. }
  709. }
  710. /* check out select */
  711. for (i = 0; i < module_num - 1; i++) {
  712. for (j = 0; j < DDP_SEL_OUT_NUM; j++) {
  713. if (module_list[i] != sel_out_map[j].id)
  714. continue;
  715. /* find next module which can be connected */
  716. step = i + 1;
  717. while (module_can_connect[module_list[step]].bit == 0
  718. && step < module_num) {
  719. step++;
  720. }
  721. ASSERT(step < module_num);
  722. for (k = 0; k < 4; k++) {
  723. if (sel_out_map[j].id_bit_map[k] == -1)
  724. break;
  725. if (sel_out_map[j].id_bit_map[k] == module_list[step]) {
  726. if (DISP_REG_GET(sel_out_map[j].reg) != k) {
  727. path_error += 1;
  728. DDPDUMP
  729. ("error:out_s %s not connect to %s, expect=0x%x, real=0x%x\n",
  730. ddp_get_module_name(module_list[i]),
  731. ddp_get_module_name(module_list[step]),
  732. k, DISP_REG_GET(sel_out_map[j].reg));
  733. }
  734. break;
  735. }
  736. }
  737. }
  738. }
  739. /* check input select */
  740. for (i = 1; i < module_num; i++) {
  741. for (j = 0; j < DDP_SEL_IN_NUM; j++) {
  742. if (module_list[i] != sel_in_map[j].id)
  743. continue;
  744. /* find next module which can be connected */
  745. step = i - 1;
  746. while (module_can_connect[module_list[step]].bit == 0 && step > 0)
  747. step--;
  748. ASSERT(step >= 0);
  749. for (k = 0; k < 4; k++) {
  750. if (sel_in_map[j].id_bit_map[k] == -1)
  751. break;
  752. if (sel_in_map[j].id_bit_map[k] == module_list[step]) {
  753. if (DISP_REG_GET(sel_in_map[j].reg) != k) {
  754. path_error += 1;
  755. DDPDUMP("error:in_s %s not conn to %s,expect0x%x,real0x%x\n",
  756. ddp_get_module_name(module_list[step]),
  757. ddp_get_module_name(module_list[i]), k,
  758. DISP_REG_GET(sel_in_map[j].reg));
  759. }
  760. break;
  761. }
  762. }
  763. }
  764. }
  765. if (path_error == 0) {
  766. DDPDUMP("path: %s to %s is connected\n", ddp_get_module_name(module_list[0]),
  767. ddp_get_module_name(module_list[module_num - 1]));
  768. } else {
  769. DDPDUMP("path: %s to %s not connected!!!\n", ddp_get_module_name(module_list[0]),
  770. ddp_get_module_name(module_list[module_num - 1]));
  771. }
  772. }
  773. static void ddp_disconnect_path_l(int *module_list, void *handle)
  774. {
  775. int i;
  776. unsigned int j, k;
  777. int step = 0;
  778. unsigned int mout = 0;
  779. unsigned int reg_mout = 0;
  780. unsigned int mout_idx = 0;
  781. int module_num = ddp_get_module_num_l(module_list);
  782. DDPDBG("disconnect_path: %s to %s\n", ddp_get_module_name(module_list[0]),
  783. ddp_get_module_name(module_list[module_num - 1]));
  784. for (i = 0; i < module_num - 1; i++) {
  785. for (j = 0; j < DDP_MOUT_NUM; j++) {
  786. if (module_list[i] == mout_map[j].id) {
  787. /* find next module which can be connected */
  788. step = i + 1;
  789. while (module_can_connect[module_list[step]].bit == 0
  790. && step < module_num) {
  791. step++;
  792. }
  793. ASSERT(step < module_num);
  794. for (k = 0; k < 5; k++) {
  795. if (mout_map[j].out_id_bit_map[k].m == -1)
  796. break;
  797. if (mout_map[j].out_id_bit_map[k].m == module_list[step]) {
  798. mout |= mout_map[j].out_id_bit_map[k].v;
  799. reg_mout |= mout;
  800. mout_idx = j;
  801. DDPDBG("disconnect mout %s to %s\n",
  802. ddp_get_module_name(module_list[i]),
  803. ddp_get_module_name(module_list[step]));
  804. break;
  805. }
  806. }
  807. /* update mout_value */
  808. mout_map[j].reg_val &= ~mout;
  809. mout = 0;
  810. }
  811. }
  812. if (reg_mout) {
  813. DISP_REG_SET(handle, mout_map[mout_idx].reg, mout_map[mout_idx].reg_val);
  814. reg_mout = 0;
  815. mout_idx = 0;
  816. }
  817. }
  818. }
  819. static int ddp_get_mutex_src(DISP_MODULE_ENUM dest_module, DDP_MODE ddp_mode,
  820. unsigned int *SOF_src, unsigned int *EOF_src)
  821. {
  822. unsigned int src_from_dst_module = 0;
  823. if (dest_module == DISP_MODULE_WDMA0 || dest_module == DISP_MODULE_WDMA1) {
  824. if (ddp_mode == DDP_VIDEO_MODE)
  825. DISP_LOG_W("%s: dst_mode=%s, but is video mode !!\n", __func__,
  826. ddp_get_module_name(dest_module));
  827. *SOF_src = *EOF_src = SOF_VAL_MUTEX0_SOF_SINGLE_MODE;
  828. return 0;
  829. }
  830. if (dest_module == DISP_MODULE_DSI0 || dest_module == DISP_MODULE_DSIDUAL) {
  831. src_from_dst_module = SOF_VAL_MUTEX0_SOF_FROM_DSI0;
  832. } else if (dest_module == DISP_MODULE_DPI) {
  833. src_from_dst_module = SOF_VAL_MUTEX0_SOF_FROM_DPI;
  834. } else {
  835. DDPERR("get mutex sof, invalid param dst module = %s(%d), dsi mode %s\n",
  836. ddp_get_module_name(dest_module), dest_module, ddp_get_mode_name(ddp_mode));
  837. ASSERT(0);
  838. }
  839. if (ddp_mode == DDP_CMD_MODE) {
  840. *SOF_src = SOF_VAL_MUTEX0_SOF_SINGLE_MODE;
  841. if (0/*disp_helper_get_option(DISP_OPT_MUTEX_EOF_EN_FOR_CMD_MODE)*/)
  842. *EOF_src = src_from_dst_module;
  843. else
  844. *EOF_src = SOF_VAL_MUTEX0_EOF_DISABLE;
  845. } else {
  846. *SOF_src = *EOF_src = src_from_dst_module;
  847. }
  848. return 0;
  849. }
  850. /* id: mutex ID, 0~5 */
  851. static int ddp_mutex_set_l(int mutex_id, int *module_list, DDP_MODE ddp_mode, void *handle)
  852. {
  853. int i = 0;
  854. unsigned int value0 = 0;
  855. unsigned int value1 = 0;
  856. unsigned int sof_val;
  857. unsigned int sof_src, eof_src;
  858. int module_num = ddp_get_module_num_l(module_list);
  859. ddp_get_mutex_src(module_list[module_num - 1], ddp_mode, &sof_src, &eof_src);
  860. if (mutex_id < DISP_MUTEX_DDP_FIRST || mutex_id > DISP_MUTEX_DDP_LAST) {
  861. DDPERR("exceed mutex max (0 ~ %d)\n", DISP_MUTEX_DDP_LAST);
  862. return -1;
  863. }
  864. for (i = 0; i < module_num; i++) {
  865. if (module_mutex_map[module_list[i]].bit != -1) {
  866. DDPDBG("module %s added to mutex %d\n", ddp_get_module_name(module_list[i]),
  867. mutex_id);
  868. if (module_mutex_map[module_list[i]].mod_num == 0) {
  869. value0 |= (1 << module_mutex_map[module_list[i]].bit);
  870. } else if (module_mutex_map[module_list[i]].mod_num == 1) {
  871. /* DISP_MODULE_DSIDUAL is special */
  872. if (DISP_MODULE_DSIDUAL == module_mutex_map[module_list[i]].module) {
  873. value1 |= (1 << module_mutex_map[DISP_MODULE_DSI0].bit); /* DISP MODULE enum must start from 0 */
  874. value1 |= (1 << module_mutex_map[DISP_MODULE_DSI1].bit);
  875. } else {
  876. value1 |= (1 << module_mutex_map[module_list[i]].bit);
  877. }
  878. }
  879. } else {
  880. DDPDBG("module %s not added to mutex %d\n",
  881. ddp_get_module_name(module_list[i]), mutex_id);
  882. }
  883. }
  884. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_MOD0(mutex_id), value0);
  885. sof_val = REG_FLD_VAL(SOF_FLD_MUTEX0_SOF, sof_src);
  886. sof_val |= REG_FLD_VAL(SOF_FLD_MUTEX0_EOF, eof_src);
  887. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_SOF(mutex_id), sof_val);
  888. DDPDBG("mutex %d value=0x%x, sof=%s, eof=%s\n", mutex_id,
  889. value0, ddp_get_mutex_sof_name(sof_src), ddp_get_mutex_sof_name(eof_src));
  890. return 0;
  891. }
  892. static void ddp_check_mutex_l(int mutex_id, int *module_list, DDP_MODE ddp_mode)
  893. {
  894. int i = 0;
  895. uint32_t real_value0 = 0;
  896. uint32_t real_value1 = 0;
  897. uint32_t expect_value0 = 0;
  898. uint32_t expect_value1 = 0;
  899. unsigned int real_sof, real_eof, val;
  900. unsigned int expect_sof, expect_eof;
  901. int module_num = ddp_get_module_num_l(module_list);
  902. if (mutex_id < DISP_MUTEX_DDP_FIRST || mutex_id > DISP_MUTEX_DDP_LAST) {
  903. DDPDUMP("error:check mutex fail:exceed mutex max (0 ~ %d)\n", DISP_MUTEX_DDP_LAST);
  904. return;
  905. }
  906. real_value0 = DISP_REG_GET(DISP_REG_CONFIG_MUTEX_MOD0(mutex_id));
  907. for (i = 0; i < module_num; i++) {
  908. if (module_mutex_map[module_list[i]].bit != -1) {
  909. if (module_mutex_map[module_list[i]].mod_num == 0) {
  910. expect_value0 |= (1 << module_mutex_map[module_list[i]].bit);
  911. } else if (module_mutex_map[module_list[i]].mod_num == 1) {
  912. if (DISP_MODULE_DSIDUAL == module_mutex_map[module_list[i]].module) {
  913. expect_value1 |= (1 << module_mutex_map[DISP_MODULE_DSI0].bit); /* DISP MODULE enum must start from 0 */
  914. expect_value1 |= (1 << module_mutex_map[DISP_MODULE_DSI1].bit);
  915. } else {
  916. expect_value1 |= (1 << module_mutex_map[module_list[i]].bit);
  917. }
  918. }
  919. }
  920. }
  921. if (expect_value0 != real_value0)
  922. DDPDUMP("error:mutex %d error: expect0 0x%x, real0 0x%x\n", mutex_id, expect_value0,
  923. real_value0);
  924. if (expect_value1 != real_value1)
  925. DDPDUMP("error:mutex %d error: expect1 0x%x, real1 0x%x\n", mutex_id, expect_value1,
  926. real_value1);
  927. val = DISP_REG_GET(DISP_REG_CONFIG_MUTEX_SOF(mutex_id));
  928. real_sof = REG_FLD_VAL_GET(SOF_FLD_MUTEX0_SOF, val);
  929. real_eof = REG_FLD_VAL_GET(SOF_FLD_MUTEX0_EOF, val);
  930. ddp_get_mutex_src(module_list[module_num - 1], ddp_mode, &expect_sof, &expect_eof);
  931. if (expect_sof != real_sof)
  932. DDPDUMP("error:mutex %d sof error: expect %s, real %s\n", mutex_id,
  933. ddp_get_mutex_sof_name(expect_sof), ddp_get_mutex_sof_name(real_sof));
  934. if (expect_eof != real_eof)
  935. DDPDUMP("error:mutex %d eof error: expect %s, real %s\n", mutex_id,
  936. ddp_get_mutex_sof_name(expect_eof), ddp_get_mutex_sof_name(real_eof));
  937. }
  938. static int ddp_mutex_enable_l(int mutex_idx, void *handle)
  939. {
  940. DDPDBG("mutex %d enable\n", mutex_idx);
  941. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_CFG, 0);
  942. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_EN(mutex_idx), 1);
  943. return 0;
  944. }
  945. int ddp_get_module_num(DDP_SCENARIO_ENUM scenario)
  946. {
  947. return ddp_get_module_num_l(module_list_scenario[scenario]);
  948. }
  949. static void ddp_print_scenario(DDP_SCENARIO_ENUM scenario)
  950. {
  951. int i =0;
  952. char path[512]= {'\0'};
  953. int num = ddp_get_module_num(scenario);
  954. for (i = 0; i < num; i++)
  955. strncat(path, ddp_get_module_name(
  956. module_list_scenario[scenario][i]),
  957. (sizeof(path) - strlen(path) - 1));
  958. DDPMSG("scenario %s have modules: %s\n",ddp_get_scenario_name(scenario),path);
  959. }
  960. static int ddp_find_module_index(DDP_SCENARIO_ENUM ddp_scenario, DISP_MODULE_ENUM module)
  961. {
  962. int i = 0;
  963. for (i = 0; i < DDP_ENING_NUM; i++) {
  964. if (module_list_scenario[ddp_scenario][i] == (int)module)
  965. return i;
  966. }
  967. DDPDBG("find module: can not find module %s on scenario %s\n", ddp_get_module_name(module),
  968. ddp_get_scenario_name(ddp_scenario));
  969. return -1;
  970. }
  971. /* set display interface when kernel init */
  972. int ddp_set_dst_module(DDP_SCENARIO_ENUM scenario, DISP_MODULE_ENUM dst_module)
  973. {
  974. int i = 0;
  975. DDPMSG("ddp_set_dst_module, scenario=%s, dst_module=%s\n",
  976. ddp_get_scenario_name(scenario), ddp_get_module_name(dst_module));
  977. if (ddp_find_module_index(scenario, dst_module) > 0) {
  978. DDPDBG("%s is already on path\n", ddp_get_module_name(dst_module));
  979. return 0;
  980. }
  981. i = ddp_get_module_num_l(module_list_scenario[scenario]) - 1;
  982. ASSERT(i >= 0);
  983. if (dst_module == DISP_MODULE_DSIDUAL) {
  984. if (i < (DDP_ENING_NUM - 1)) {
  985. module_list_scenario[scenario][i++] = DISP_MODULE_SPLIT0;
  986. } else {
  987. DDPERR("set dst module over up bound\n");
  988. return -1;
  989. }
  990. } else {
  991. if (ddp_get_dst_module(scenario) == DISP_MODULE_DSIDUAL) {
  992. if (i >= 1) {
  993. module_list_scenario[scenario][i--] = -1;
  994. } else {
  995. DDPERR("set dst module over low bound\n");
  996. return -1;
  997. }
  998. }
  999. }
  1000. module_list_scenario[scenario][i] = dst_module;
  1001. if (scenario == DDP_SCENARIO_PRIMARY_ALL)
  1002. ddp_set_dst_module(DDP_SCENARIO_PRIMARY_DISP, dst_module);
  1003. else if (scenario == DDP_SCENARIO_SUB_ALL)
  1004. ddp_set_dst_module(DDP_SCENARIO_SUB_RDMA1_DISP, dst_module);
  1005. ddp_print_scenario(scenario);
  1006. return 0;
  1007. }
  1008. DISP_MODULE_ENUM ddp_get_dst_module(DDP_SCENARIO_ENUM ddp_scenario)
  1009. {
  1010. DISP_MODULE_ENUM module_name = DISP_MODULE_UNKNOWN;
  1011. int module_num = ddp_get_module_num_l(module_list_scenario[ddp_scenario]) - 1;
  1012. if (module_num >= 0)
  1013. module_name = module_list_scenario[ddp_scenario][module_num];
  1014. return module_name;
  1015. }
  1016. int *ddp_get_scenario_list(DDP_SCENARIO_ENUM ddp_scenario)
  1017. {
  1018. return module_list_scenario[ddp_scenario];
  1019. }
  1020. int ddp_is_module_in_scenario(DDP_SCENARIO_ENUM ddp_scenario, DISP_MODULE_ENUM module)
  1021. {
  1022. int i = 0;
  1023. for (i = 0; i < DDP_ENING_NUM; i++) {
  1024. if (module_list_scenario[ddp_scenario][i] == (int)module)
  1025. return 1;
  1026. }
  1027. return 0;
  1028. }
  1029. int ddp_insert_module(DDP_SCENARIO_ENUM ddp_scenario, DISP_MODULE_ENUM place,
  1030. DISP_MODULE_ENUM module)
  1031. {
  1032. int i = DDP_ENING_NUM - 1;
  1033. int idx = ddp_find_module_index(ddp_scenario, place);
  1034. if (idx < 0) {
  1035. DDPERR("error: ddp_insert_module , place=%s is not in scenario %s!\n",
  1036. ddp_get_module_name(place), ddp_get_scenario_name(ddp_scenario));
  1037. return -1;
  1038. }
  1039. for (i = 0; i < DDP_ENING_NUM; i++) {
  1040. if (module_list_scenario[ddp_scenario][i] == (int)module) {
  1041. DDPERR("error: ddp_insert_module , module=%s is already in scenario %s!\n",
  1042. ddp_get_module_name(module), ddp_get_scenario_name(ddp_scenario));
  1043. return -1;
  1044. }
  1045. }
  1046. /* should have empty room for insert */
  1047. ASSERT(module_list_scenario[ddp_scenario][DDP_ENING_NUM - 1] == -1);
  1048. for (i = DDP_ENING_NUM - 2; i >= idx; i--)
  1049. module_list_scenario[ddp_scenario][i + 1] = module_list_scenario[ddp_scenario][i];
  1050. module_list_scenario[ddp_scenario][idx] = module;
  1051. {
  1052. int *modules = ddp_get_scenario_list(ddp_scenario);
  1053. int module_num = ddp_get_module_num(ddp_scenario);
  1054. DDPMSG("after insert module, module list is:\n");
  1055. for (i = 0; i < module_num; i++)
  1056. DDPMSG("%s-", ddp_get_module_name(modules[i]));
  1057. }
  1058. return 0;
  1059. }
  1060. int ddp_remove_module(DDP_SCENARIO_ENUM ddp_scenario, DISP_MODULE_ENUM module)
  1061. {
  1062. int i = 0;
  1063. int idx = ddp_find_module_index(ddp_scenario, module);
  1064. if (idx < 0) {
  1065. DDPERR("ddp_remove_module, can not find module %s in scenario %s\n",
  1066. ddp_get_module_name(module), ddp_get_scenario_name(ddp_scenario));
  1067. return -1;
  1068. }
  1069. for (i = idx; i < DDP_ENING_NUM - 1; i++)
  1070. module_list_scenario[ddp_scenario][i] = module_list_scenario[ddp_scenario][i + 1];
  1071. module_list_scenario[ddp_scenario][DDP_ENING_NUM - 1] = -1;
  1072. {
  1073. int *modules = ddp_get_scenario_list(ddp_scenario);
  1074. int module_num = ddp_get_module_num(ddp_scenario);
  1075. DDPMSG("after remove module, module list is:\n");
  1076. for (i = 0; i < module_num; i++)
  1077. DDPMSG("%s-", ddp_get_module_name(modules[i]));
  1078. }
  1079. return 0;
  1080. }
  1081. void ddp_connect_path(DDP_SCENARIO_ENUM scenario, void *handle)
  1082. {
  1083. DDPDBG("path connect on scenario %s\n", ddp_get_scenario_name(scenario));
  1084. if (scenario == DDP_SCENARIO_PRIMARY_ALL) {
  1085. ddp_connect_path_l(module_list_scenario[DDP_SCENARIO_PRIMARY_DISP], handle);
  1086. ddp_connect_path_l(module_list_scenario[DDP_SCENARIO_PRIMARY_OVL_MEMOUT], handle);
  1087. } else if (scenario == DDP_SCENARIO_SUB_ALL) {
  1088. ddp_connect_path_l(module_list_scenario[DDP_SCENARIO_SUB_DISP], handle);
  1089. ddp_connect_path_l(module_list_scenario[DDP_SCENARIO_SUB_OVL_MEMOUT], handle);
  1090. } else {
  1091. ddp_connect_path_l(module_list_scenario[scenario], handle);
  1092. }
  1093. return;
  1094. }
  1095. void ddp_disconnect_path(DDP_SCENARIO_ENUM scenario, void *handle)
  1096. {
  1097. DDPDBG("path disconnect on scenario %s\n", ddp_get_scenario_name(scenario));
  1098. if (scenario == DDP_SCENARIO_PRIMARY_ALL) {
  1099. ddp_disconnect_path_l(module_list_scenario[DDP_SCENARIO_PRIMARY_DISP], handle);
  1100. ddp_disconnect_path_l(module_list_scenario[DDP_SCENARIO_PRIMARY_OVL_MEMOUT],
  1101. handle);
  1102. } else if (scenario == DDP_SCENARIO_SUB_ALL) {
  1103. ddp_disconnect_path_l(module_list_scenario[DDP_SCENARIO_SUB_DISP], handle);
  1104. ddp_disconnect_path_l(module_list_scenario[DDP_SCENARIO_SUB_OVL_MEMOUT], handle);
  1105. } else {
  1106. ddp_disconnect_path_l(module_list_scenario[scenario], handle);
  1107. }
  1108. return;
  1109. }
  1110. void ddp_check_path(DDP_SCENARIO_ENUM scenario)
  1111. {
  1112. DDPDBG("path check path on scenario %s\n", ddp_get_scenario_name(scenario));
  1113. if (scenario == DDP_SCENARIO_PRIMARY_ALL) {
  1114. ddp_check_path_l(module_list_scenario[DDP_SCENARIO_PRIMARY_DISP]);
  1115. ddp_check_path_l(module_list_scenario[DDP_SCENARIO_PRIMARY_OVL_MEMOUT]);
  1116. } else if (scenario == DDP_SCENARIO_SUB_ALL) {
  1117. ddp_check_path_l(module_list_scenario[DDP_SCENARIO_SUB_DISP]);
  1118. ddp_check_path_l(module_list_scenario[DDP_SCENARIO_SUB_OVL_MEMOUT]);
  1119. } else {
  1120. ddp_check_path_l(module_list_scenario[scenario]);
  1121. }
  1122. return;
  1123. }
  1124. void ddp_check_mutex(int mutex_id, DDP_SCENARIO_ENUM scenario, DDP_MODE mode)
  1125. {
  1126. DDPDBG("check mutex %d on scenario %s\n", mutex_id, ddp_get_scenario_name(scenario));
  1127. ddp_check_mutex_l(mutex_id, module_list_scenario[scenario], mode);
  1128. }
  1129. int ddp_mutex_set(int mutex_id, DDP_SCENARIO_ENUM scenario, DDP_MODE mode, void *handle)
  1130. {
  1131. if (scenario < DDP_SCENARIO_MAX) {
  1132. return ddp_mutex_set_l(mutex_id, module_list_scenario[scenario], mode, handle);
  1133. } else {
  1134. DDPERR("Invalid scenario %d when setting mutex\n", scenario);
  1135. return -1;
  1136. }
  1137. return 0;
  1138. }
  1139. int ddp_mutex_Interrupt_enable(int mutex_id, void *handle)
  1140. {
  1141. DDPDBG("mutex %d interrupt enable\n", mutex_id);
  1142. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_INTEN, 0x1 << mutex_id, 0x1 << mutex_id);
  1143. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_INTEN, 1 << (mutex_id + DISP_MUTEX_TOTAL),
  1144. 0x1 << (mutex_id + DISP_MUTEX_TOTAL));
  1145. return 0;
  1146. }
  1147. int ddp_mutex_Interrupt_disable(int mutex_id, void *handle)
  1148. {
  1149. DDPDBG("mutex %d interrupt disenable\n", mutex_id);
  1150. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_INTEN, 0, 0x1 << mutex_id);
  1151. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_INTEN, 0, 0x1 << (mutex_id + DISP_MUTEX_TOTAL));
  1152. return 0;
  1153. }
  1154. int ddp_mutex_reset(int mutex_id, void *handle)
  1155. {
  1156. DDPDBG("mutex %d reset\n", mutex_id);
  1157. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_RST(mutex_id), 1);
  1158. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_RST(mutex_id), 0);
  1159. return 0;
  1160. }
  1161. int ddp_is_moudule_in_mutex(int mutex_id, DISP_MODULE_ENUM module)
  1162. {
  1163. int ret = 0;
  1164. uint32_t real_value = 0;
  1165. if (mutex_id < DISP_MUTEX_DDP_FIRST || mutex_id > DISP_MUTEX_DDP_LAST) {
  1166. DDPDUMP("error:check_moudule_in_mute fail:exceed mutex max (0 ~ %d)\n",
  1167. DISP_MUTEX_DDP_LAST);
  1168. return ret;
  1169. }
  1170. if (module_mutex_map[module].mod_num == 0) {
  1171. real_value = DISP_REG_GET(DISP_REG_CONFIG_MUTEX_MOD0(mutex_id));
  1172. } else if (module_mutex_map[module].mod_num == 1) {
  1173. real_value = DISP_REG_GET(DISP_REG_CONFIG_MUTEX_MOD1(mutex_id));
  1174. }
  1175. if (1 == ((real_value >> module_mutex_map[module].bit) & 0x01))
  1176. ret = 1;
  1177. return ret;
  1178. }
  1179. int ddp_mutex_add_module(int mutex_id, DISP_MODULE_ENUM module, void *handle)
  1180. {
  1181. int value = 0;
  1182. if (module < DISP_MODULE_UNKNOWN) {
  1183. if (module_mutex_map[module].bit != -1) {
  1184. DDPDBG("module %s added to mutex %d\n", ddp_get_module_name(module),
  1185. mutex_id);
  1186. value |= (1 << module_mutex_map[module].bit);
  1187. if (module_mutex_map[module].mod_num == 0) {
  1188. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_MOD0(mutex_id), value, value);
  1189. } else if (module_mutex_map[module].mod_num == 1) {
  1190. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_MOD1(mutex_id), value, value);
  1191. }
  1192. }
  1193. }
  1194. return 0;
  1195. }
  1196. int ddp_mutex_remove_module(int mutex_id, DISP_MODULE_ENUM module, void *handle)
  1197. {
  1198. int value = 0;
  1199. if (module < DISP_MODULE_UNKNOWN) {
  1200. if (module_mutex_map[module].bit != -1) {
  1201. DDPDBG("module %s added to mutex %d\n", ddp_get_module_name(module),
  1202. mutex_id);
  1203. value |= (1 << module_mutex_map[module].bit);
  1204. if (module_mutex_map[module].mod_num == 0) {
  1205. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_MOD0(mutex_id), 0, value);
  1206. } else if (module_mutex_map[module].mod_num == 1) {
  1207. DISP_REG_MASK(handle, DISP_REG_CONFIG_MUTEX_MOD1(mutex_id), 0, value);
  1208. }
  1209. }
  1210. }
  1211. return 0;
  1212. }
  1213. int ddp_mutex_clear(int mutex_id, void *handle)
  1214. {
  1215. DDPDBG("mutex %d clear\n", mutex_id);
  1216. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_MOD0(mutex_id), 0);
  1217. /*DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_MOD1(mutex_id), 0);*/
  1218. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_SOF(mutex_id), 0);
  1219. /* enough or not */
  1220. /*reset mutex */
  1221. ddp_mutex_reset(mutex_id, handle);
  1222. return 0;
  1223. }
  1224. int ddp_mutex_enable(int mutex_id, DDP_SCENARIO_ENUM scenario, void *handle)
  1225. {
  1226. return ddp_mutex_enable_l(mutex_id, handle);
  1227. }
  1228. int ddp_mutex_disable(int mutex_id, DDP_SCENARIO_ENUM scenario, void *handle)
  1229. {
  1230. DDPDBG("mutex %d disable\n", mutex_id);
  1231. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_EN(mutex_id), 0);
  1232. return 0;
  1233. }
  1234. int ddp_mutex_get(int mutex_id, DDP_SCENARIO_ENUM scenario, void *handle)
  1235. {
  1236. DDPDBG("mutex %d get\n", mutex_id);
  1237. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_GET(mutex_id), 1);
  1238. return 0;
  1239. }
  1240. int ddp_mutex_release(int mutex_id, DDP_SCENARIO_ENUM scenario, void *handle)
  1241. {
  1242. DDPDBG("mutex %d release\n", mutex_id);
  1243. DISP_REG_SET(handle, DISP_REG_CONFIG_MUTEX_GET(mutex_id), 0);
  1244. return 0;
  1245. }
  1246. int ddp_mutex_set_sof_wait(int mutex_id, cmdqRecHandle handle, int wait)
  1247. {
  1248. if (mutex_id < DISP_MUTEX_DDP_FIRST || mutex_id > DISP_MUTEX_DDP_LAST) {
  1249. DDPERR("exceed mutex max (0 ~ %d)\n", DISP_MUTEX_DDP_LAST);
  1250. return -1;
  1251. }
  1252. DISP_REG_SET_FIELD(handle, SOF_FLD_MUTEX0_SOF_WAIT, DISP_REG_CONFIG_MUTEX_SOF(mutex_id), wait);
  1253. return 0;
  1254. }
  1255. int ddp_check_engine_status(int mutexID)
  1256. {
  1257. /* check engines' clock bit & enable bit & status bit before unlock mutex */
  1258. /* should not needed, in comdq do? */
  1259. int result = 0;
  1260. return result;
  1261. }
  1262. int ddp_path_top_clock_on(void)
  1263. {
  1264. DDPMSG("ddp path top clock on\n");
  1265. ddp_enable_module_clock(DISP_MODULE_SMI_COMMON);
  1266. ddp_enable_module_clock(DISP_MODULE_SMI_LARB0);
  1267. ddp_enable_module_clock(DISP_MODULE_SMI_LARB1);
  1268. DDPMSG("ddp CG0:%x CG1:%x\n", DISP_REG_GET(DISP_REG_CONFIG_MMSYS_CG_CON0),
  1269. DISP_REG_GET(DISP_REG_CONFIG_MMSYS_CG_CON1));
  1270. return 0;
  1271. }
  1272. int ddp_path_top_clock_off(void)
  1273. {
  1274. DDPMSG("ddp path top clock off\n");
  1275. ddp_disable_module_clock(DISP_MODULE_SMI_LARB0);
  1276. ddp_disable_module_clock(DISP_MODULE_SMI_LARB1);
  1277. ddp_disable_module_clock(DISP_MODULE_SMI_COMMON);
  1278. DDPMSG("ddp CG0:%x CG1:%x\n", DISP_REG_GET(DISP_REG_CONFIG_MMSYS_CG_CON0),
  1279. DISP_REG_GET(DISP_REG_CONFIG_MMSYS_CG_CON1));
  1280. return 0;
  1281. }
  1282. int ddp_path_m4u_off(void)
  1283. {
  1284. int i;
  1285. #ifdef MTKFB_NO_M4U
  1286. /* display ports bypass m4u.
  1287. ==== FBI WARNING: ==========
  1288. This function is hard code of m4u port setting !!!
  1289. Please ask M4U owner about it for new chip porting !!!
  1290. */
  1291. /*
  1292. M4U_PORT_DISP_OVL0,
  1293. M4U_PORT_DISP_2L_OVL0_LARB0,
  1294. M4U_PORT_DISP_2L_OVL1_LARB0,
  1295. M4U_PORT_DISP_RDMA0,
  1296. M4U_PORT_DISP_RDMA1,
  1297. M4U_PORT_DISP_WDMA0,
  1298. */
  1299. for (i=0; i<9; i++)
  1300. DISP_REG_SET_FIELD(0, REG_FLD_MMU_EN, DISP_REG_SMI_LARB0_MMU_EN + i*4, 0);
  1301. for (i=0; i<5; i++)
  1302. DISP_REG_SET_FIELD(0, REG_FLD_MMU_EN, DISP_REG_SMI_LARB1_MMU_EN + i*4, 0);
  1303. #endif
  1304. return 0;
  1305. }